EP3490105A1 - Stator pour une machine rotative électrique - Google Patents

Stator pour une machine rotative électrique Download PDF

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Publication number
EP3490105A1
EP3490105A1 EP17203599.0A EP17203599A EP3490105A1 EP 3490105 A1 EP3490105 A1 EP 3490105A1 EP 17203599 A EP17203599 A EP 17203599A EP 3490105 A1 EP3490105 A1 EP 3490105A1
Authority
EP
European Patent Office
Prior art keywords
stator
stiffening element
recesses
rotating machine
electric rotating
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Withdrawn
Application number
EP17203599.0A
Other languages
German (de)
English (en)
Inventor
Christoph Balzer
Sascha Jadzinski
Frank Krakow
Christian Meyer
Sabrina Schulz
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Siemens AG
Original Assignee
Siemens AG
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Siemens AG filed Critical Siemens AG
Priority to EP17203599.0A priority Critical patent/EP3490105A1/fr
Publication of EP3490105A1 publication Critical patent/EP3490105A1/fr
Withdrawn legal-status Critical Current

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Classifications

    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K1/00Details of the magnetic circuit
    • H02K1/06Details of the magnetic circuit characterised by the shape, form or construction
    • H02K1/12Stationary parts of the magnetic circuit
    • H02K1/18Means for mounting or fastening magnetic stationary parts on to, or to, the stator structures
    • H02K1/185Means for mounting or fastening magnetic stationary parts on to, or to, the stator structures to outer stators
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K1/00Details of the magnetic circuit
    • H02K1/06Details of the magnetic circuit characterised by the shape, form or construction
    • H02K1/12Stationary parts of the magnetic circuit
    • H02K1/16Stator cores with slots for windings

Definitions

  • the invention relates to a stator for an electric rotating machine comprising a laminated stator core with a plurality of layered electrical sheets.
  • the invention relates to an electric rotating machine with at least one such stator.
  • the invention further relates to a nacelle drive with at least one such electric rotating machine.
  • the invention relates to a watercraft, in particular a ship, with at least one such gondola drive.
  • the invention relates to a method for producing a stator.
  • Such a stator is used, for example, in an electric rotating machine in a nacelle drive, also called propulsion drive and short POD drive, on a ship.
  • the electric rotating machine which is designed in particular as a motor and / or generator, can be operated, for example, with a power of at least one megawatt.
  • the nacelle drive is located outside of a hull, surrounded during operation of seawater and thereby exposed to a flow. Due to the flow, increased demands are made on a size of the electric rotating machine, in particular on the machine diameter, and on a rigidity of the stator of the electric rotating machine.
  • the publication EP 3 145 055 A1 describes a laminated stator core of an electrical machine, which in particular can be used in a POD drive of a ship.
  • the stator lamination stack comprises pressure plates, wherein a plurality of latches connect the at least two pressure plates to one another and wherein the pressure plates are in particular end-side pressure plates.
  • the bars are at least partially in the grooves of electrical sheets. The bars are welded to the pressure plates.
  • the laminated stator core is particularly suitable for a POD drive.
  • the publication EP 2 670 025 A1 describes a cooling support element for a stator segment of an electrical machine, in particular a generator.
  • the cooling support member includes a first plate having a top surface and a bottom surface, and a second plate having a top surface and a bottom surface. On the lower surface of the second plate T-shaped webs are arranged to increase the rigidity of the cooling support member.
  • the invention has for its object to provide a stator for an electric rotating machine, which has a low radial height with a high rigidity.
  • a stator for an electric rotating machine which has a stator lamination with a plurality of layered electrical sheets, wherein the stator lamination is at least partially surrounded by a metallic stiffening element, wherein the stiffening member rests flat on the stator lamination and having recesses, wherein the stiffening element is connected in the region of at least some recesses with at least a part of the electrical sheets of the laminated stator core.
  • the object is achieved by an electric rotating machine with at least one such stator.
  • a nacelle drive with at least one such electric rotating machine.
  • the object is achieved by a watercraft, especially ship, with at least one such gondola drive.
  • the object is achieved according to the invention by a method for producing such a stator, wherein a laminated stator core is formed by layers of a plurality of electrical sheets, wherein then a metallic stiffening element at least partially resting on the stator lamination stack and connected to at least a portion of the electrical steel sheets.
  • stator can be applied analogously to the electric rotating machine, the nacelle drive, the watercraft and the manufacturing process.
  • the invention is based on the consideration to reduce the radial height of a stator, for example, to equip a watercraft with a nacelle drive, which has a high power density and / or a fluidically favorable shape.
  • the radial height of the stator is reduced, without losing rigidity, by connecting the electrical sheets of the stator lamination stack via a flat metallic stiffening element. Due to the stiffening element lying flat on the stator lamination stack, a displacement of the electrical sheets relative to one another, for example under the effect of a torsional moment, is prevented, so that in particular a high torsional rigidity of the stator lamination stack is achieved.
  • stiffening element Since the stiffening element is arranged completely or at least partially around the stator lamination stack and rests flat on the stator lamination stack, a very small radial overall height of the stator is achieved with sufficient rigidity. Another advantage of having one the stiffening element connected to the electrical plates is that on clamping bolts, which extend through the stator lamination and brace the electrical panels together, at least partially can be dispensed with, which additionally reduces the radial height of the stator.
  • the stiffening element is integrally connected to at least part of the electrical sheets of the laminated stator core.
  • a cohesive connection By a cohesive connection, the stiffening element is permanently connected to the electrical sheets.
  • Such a permanent connection is reliable and low maintenance.
  • saved by a cohesive connection for example, by eliminating connecting elements, in particular radial, height.
  • the cohesive connection is produced by gluing, soldering and / or welding.
  • Such compounds are, even at high mechanical loads, reliable and easy and inexpensive to manufacture.
  • At least one cohesive connection in the circumferential direction is at least one cohesive connection in the circumferential direction.
  • the course in the circumferential direction increases a contact surface with the respective electrical sheets, so that the mechanical stability and the torsional rigidity are increased.
  • the stiffening element is designed as, in particular periodic, grid, which has at least partially circumferentially arranged branches.
  • periodic grating is meant a grating having a pattern that repeats periodically.
  • a grid ensures a uniform torque transfer and is both easy and inexpensive to manufacture.
  • the branches of the grid are profiled in the radial direction.
  • a, for example, T-shaped or H-shaped, branched profiling in the radial direction an additional stiffening is achieved.
  • the radial height is further reduced.
  • intersecting branches are arranged substantially orthogonal to one another.
  • an orthogonal arrangement of the branches many connections of the stiffening element can be produced with the electrical steel sheets over a long length, so that the mechanical stability and the torsional rigidity are optimized.
  • an orthogonal arrangement leads to a balanced relationship between rigidity and material use.
  • the recesses are substantially polygonal, in particular tetragonal.
  • grids with a periodic pattern are easy to create. Due to the straight edges polygonal recesses are easy and inexpensive to produce.
  • the stator has at least two pressure plates, wherein the stiffening element is materially connected to at least one pressure plate.
  • the printing plates are made of a material having a higher strength compared to the electric steel sheets and / or are made thicker than the electric steel sheets.
  • the stiffening element forms fields distributed on the stator lamination stack.
  • a moment arising in the stator lamination stack is forwarded to the housing via the fields.
  • a geometry of the fields, in particular a size and / or a thickness, and a distribution of the fields on the laminated stator core are, depending according to requirements of the electric rotating machine, flexibly adaptable.
  • cooling channels are arranged inside the recesses, in particular radial. Such cooling channels allow a substantially unimpeded removal of a cooling fluid while ensuring a high rigidity and low radial height of the stator.
  • the described components of the embodiments each represent individual features of the invention, which are to be considered independently of one another, which each further develop the invention independently of one another and thus also individually or in a different combination than the one shown as part of the invention. Furthermore, the described embodiments can also be supplemented by further features of the invention already described.
  • FIG. 1 shows a longitudinal section of a nacelle drive 2 in the region of an electric rotating machine 4, which is exemplified as a permanent magnet synchronous machine.
  • the nacelle drive 2 is suitable for example for a watercraft.
  • the electric rotating machine 4 has a housing 6 which is fixed to a shaft 8.
  • the housing 6 is made for example of steel, bronze or other metallic material.
  • About the shaft 8 of the nacelle drive 2 is rotatable with an in FIG. 1 connected for the sake of clarity, not shown hull.
  • the electric rotating machine 4 further comprises a rotor 12 rotatable about a rotation axis 10 and a stator 14 surrounding the rotor 12. Between the rotor 12 and the stator 14 there is a gap 16, which is preferably designed as an air gap.
  • the rotation axis 10 defines an axial direction, a radial direction, and a circumferential direction.
  • the rotor 12 is rotatably mounted on a shaft 18 which has a respective bearing 20 on a drive side AS and on a non-drive side BS.
  • the stator 14 of the electric rotating machine 4 has a laminated stator core 22 with pressure plates 24 and intermediate pressure plates 26, wherein between the pressure plates 24 and intermediate pressure plates 26 a plurality of axially stacked electrical plates 28 is arranged.
  • the pressure plates 24, 26 have a larger outer diameter than the electric plates 28.
  • the stator 14 is connected via the pressure plates 24 and intermediate pressure plates 26 by means of a shrink connection to the housing 6.
  • a metallic stiffening element 30 is arranged, which rests flat on the stator lamination stack 22 and between the pressure plates 24, 26 is arranged.
  • the metallic stiffening element 30, which is made of a steel, for example, is permanently connected to at least a portion of the electrical steel sheets 28 of the laminated stator core 22.
  • Such a permanent connection is in particular cohesive and is produced for example via a welded connection.
  • the stiffening element 30, for example via a shrink connection, non-positively connected to at least a portion of the electrical steel sheets 28 of the laminated stator core 22.
  • the stiffening element 30 is integrally connected to at least one pressure plate 24, 26. The stiffening element 30 achieves improved rigidity, in particular torsional rigidity, while simultaneously reducing the radial overall height of the stator 14.
  • the stator 14 further comprises a stator winding 32 which is arranged in grooves 34 of the laminated stator core 22 and forms winding heads 36 at its axial ends.
  • the rotor 12 of the electric rotating machine 4 embodied by way of example as a permanent-magnet synchronous machine comprises, in particular, permanent magnets 40 integrated into a rotor laminated core 38.
  • FIG. 2 shows a perspective view of a stator 14 with a first embodiment of a stiffening element 30.
  • the grooves 34 with the stator winding 32 are not shown for reasons of clarity.
  • the stiffening element 30 is cylindrical and has a, in particular periodic, grid, which is made for example of a metal sheet and having branches that form a pattern.
  • the pattern of the grid of in FIG. 2 shown stiffening element 30 is repeated periodically, wherein the grid has substantially identical rectangular recesses 42 which are arranged in the circumferential direction and axial direction parallel to each other.
  • the rectangular recesses 42 are punched, for example, in the sheet, milled or cut out with a laser.
  • the branches of the grid have a substantially rectangular cross-section taking into account the bending of the stiffening element 30.
  • the sheet surrounding the stator 14 in particular equal periodically arranged, round or oval recesses 42.
  • a grid is made of a plurality of metal bands, wherein the portions are permanently connected to each other. Such metal bands are easy and inexpensive to manufacture.
  • the branches of the grid are profiled in the radial direction. In particular, by a T-shaped or H-shaped profiling in the radial direction an additional stiffening is achieved.
  • the further embodiment of the stator 14 in FIG. 2 corresponds to the execution in FIG. 1 ,
  • FIG. 3 shows an enlarged section of a surface of the stator 14 in the region of the stiffening element 30 in the first embodiment. Intersecting branches of the stiffening element 30 are arranged orthogonal to each other, so that substantially identical rectangular recesses 42 are formed. Alternatively, the recesses 42 are different in size. The recesses 42 are arranged so that they permit at least a radial outflow of a cooling fluid through a cooling channel arranged in the laminated stator core 22. At least one edge of a rectangular recess 42 is arranged parallel to an electrical sheet 28 such that a circumferentially extending cohesive connection between the electrical sheet 28 and the stiffening element 30 can be produced. A material connection between the pressure plate 24 and the stiffening element 30 is produced via a welded connection 44.
  • the further embodiment of the stator 14 in FIG. 3 corresponds to the execution in FIG. 2 ,
  • FIG. 4 shows a perspective view of a stator 14 with a second embodiment of a stiffening element 30.
  • the stiffening element 30 forms on the laminated stator core 22 distributed fields 46, so-called shell elements, from which are arranged between two pressure plates 24, 26.
  • the fields 46 are distributed, in particular periodically, over the outer surface of the laminated stator core 22, so that a torque arising in the laminated stator core 22 is transmitted via the shell elements to the pressure plates 24, 26 in the housing 6.
  • the fields 46 for example, via a welded connection, permanently connected to at least a portion of the electrical steel sheets 28 of the laminated stator core 22.
  • the fields 46 are positively connected to the stator lamination 22 by at least partially protrude into the stator lamination 22 and form a positive connection.
  • the further embodiment of the stator 14 in FIG. 4 corresponds to the execution in FIG. 3 ,
  • FIG. 5 shows an enlarged section of a surface of the stator 14 in the region of the stiffening element 30 in the second embodiment.
  • the fields are each designed as a grid and lie flat on the stator lamination 22, wherein at least a portion of the parallel to the electrical plates 28 branches branches with the electrical plates 28, at least partially welded, per field 46 in the circumferential direction and / or in the axial direction a plurality of welds 44 with the electrical sheets 28 of the Stator laminations 22 is formed.
  • intermediate pressure plates 26 are arranged between the fields 46 arranged.
  • the fields are connected to the pressure plates arranged on both sides at the axial ends of the laminated stator core 22 and the intermediate pressure plates 26 via welded connections 44.
  • the rectangular recesses 42 in the lattice-shaped fields are arranged so that they allow at least radial outflow of a cooling fluid through a cooling channel arranged in the laminated stator core 22.
  • the further embodiment of the stator 14 in FIG. 5 corresponds to the execution in FIG. 4 ,
  • FIG. 6 shows a perspective view of a stator 14 with a third embodiment of a stiffening element 30.
  • the stiffening element 30 comprises diagonally extending square struts 48, which abut in a helical manner on the electric sheets 28 of the laminated stator core 22 and are welded at least to a portion of the electrical sheets 28.
  • the diagonally extending square struts 48 are interrupted by intermediate pressure plates 26.
  • the intermediate pressure plates 26 openings through which the square struts 48 extend, wherein the square struts 48 in the region of the openings with the intermediate pressure plates 26, for example, by a welded connection, are firmly bonded.
  • diagonal square struts 48 a in particular diamond-shaped, grid is formed, which stiffens the stator 14.
  • the dimensioning and spacing of the diagonally extending square struts 48 depending on the requirements of the rigidity of the laminated stator core 22 and the overlap of cooling channels, which in particular extend radially through the laminated stator core 22, variable.
  • stator 14 in FIG. 6 corresponds to the execution in FIG. 3 .
  • FIG. 7 shows a watercraft 50 with a nacelle drive 2.
  • the watercraft 50 is designed in particular as a ship.
  • the nacelle drive 2 is located below a water surface 52 and has an electric rotating machine 4 and a propeller 54, wherein the propeller 54 is connected via a shaft 18 to the electric rotating machine 4.
  • Stiffening elements 30, not shown the stator 14 of the electric rotating machine 4 has a low radial height with an increased rigidity.
  • the invention relates to a stator 14 for an electric rotating machine 4, comprising a laminated stator core 22 with a plurality of layered electrical sheets 28.
  • the stator lamination 22 at least partially from a metallic Stiffening element 30 is surrounded, wherein the stiffening element 30 rests flat on the stator lamination 22 and has recesses 42, wherein the stiffening element 30 is connected in the region of at least some recesses 42 with at least a portion of the electric plates 28 of the stator lamination 22.

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  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Iron Core Of Rotating Electric Machines (AREA)
EP17203599.0A 2017-11-24 2017-11-24 Stator pour une machine rotative électrique Withdrawn EP3490105A1 (fr)

Priority Applications (1)

Application Number Priority Date Filing Date Title
EP17203599.0A EP3490105A1 (fr) 2017-11-24 2017-11-24 Stator pour une machine rotative électrique

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
EP17203599.0A EP3490105A1 (fr) 2017-11-24 2017-11-24 Stator pour une machine rotative électrique

Publications (1)

Publication Number Publication Date
EP3490105A1 true EP3490105A1 (fr) 2019-05-29

Family

ID=60452543

Family Applications (1)

Application Number Title Priority Date Filing Date
EP17203599.0A Withdrawn EP3490105A1 (fr) 2017-11-24 2017-11-24 Stator pour une machine rotative électrique

Country Status (1)

Country Link
EP (1) EP3490105A1 (fr)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP3799262A1 (fr) * 2019-09-27 2021-03-31 Siemens Aktiengesellschaft Machine électrique rotative pourvue d'aimants permanents

Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB413771A (en) * 1933-02-06 1934-07-26 William Scott Improvements in and relating to dynamo electric machines
GB512860A (en) * 1937-03-22 1939-09-27 Siemens Ag Improvements in or relating to electric motors
WO1987003147A1 (fr) * 1985-11-06 1987-05-21 Robert Bosch Gmbh Dispositif de fixation du stator d'un alternateur a courant triphase
DE102008015450A1 (de) * 2008-03-22 2009-09-24 Voith Patent Gmbh Generatorstatoranordnung
WO2011149398A1 (fr) * 2010-05-28 2011-12-01 Seabased Ab Carcasse de stator pour génératrice linéaire immergée
US20120013207A1 (en) * 2010-07-13 2012-01-19 Remy Technologies, L.L.C. Stator sleeve for an electric machine and method of establishing a coolant cavity about a stator for an electric machine
EP2670025A1 (fr) 2012-06-01 2013-12-04 Siemens Aktiengesellschaft Refroidissement et support d'un segment de stator d'une machine électrique, notamment pour une application d'éolienne
EP3145055A1 (fr) 2015-09-17 2017-03-22 Siemens Aktiengesellschaft Paquet de tole de stator et son procede de fabrication

Patent Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB413771A (en) * 1933-02-06 1934-07-26 William Scott Improvements in and relating to dynamo electric machines
GB512860A (en) * 1937-03-22 1939-09-27 Siemens Ag Improvements in or relating to electric motors
WO1987003147A1 (fr) * 1985-11-06 1987-05-21 Robert Bosch Gmbh Dispositif de fixation du stator d'un alternateur a courant triphase
DE102008015450A1 (de) * 2008-03-22 2009-09-24 Voith Patent Gmbh Generatorstatoranordnung
WO2011149398A1 (fr) * 2010-05-28 2011-12-01 Seabased Ab Carcasse de stator pour génératrice linéaire immergée
US20120013207A1 (en) * 2010-07-13 2012-01-19 Remy Technologies, L.L.C. Stator sleeve for an electric machine and method of establishing a coolant cavity about a stator for an electric machine
EP2670025A1 (fr) 2012-06-01 2013-12-04 Siemens Aktiengesellschaft Refroidissement et support d'un segment de stator d'une machine électrique, notamment pour une application d'éolienne
EP3145055A1 (fr) 2015-09-17 2017-03-22 Siemens Aktiengesellschaft Paquet de tole de stator et son procede de fabrication

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP3799262A1 (fr) * 2019-09-27 2021-03-31 Siemens Aktiengesellschaft Machine électrique rotative pourvue d'aimants permanents
WO2021058461A1 (fr) * 2019-09-27 2021-04-01 Siemens Aktiengesellschaft Machine tournante électrique à aimants permanents

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